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Updated: Aug 20, 2026

Development and Application of Rapamycin-regulated Tyrosine Phosphatases
Published on: September 6, 2024
A novel role for Gab1 and SHP2 in epidermal growth factor-induced Ras activation
Alexandra Montagner1, Armelle Yart, Marie Dance
1Département Lipoprotéines et Médiateurs Lipidiques, INSERM U563, Hôpital Purpan, 31300 Toulouse, France.
Abstract:
SHP2 was recently found to down-regulate PI3K activation by dephosphorylating Gab1 but the mechanisms explaining the positive role of the Gab1/SHP2 pathway in EGF-induced Ras activation remain ill defined. Substrate trapping experiments now suggest that SHP2 dephosphorylates other Gab1 phosphotyrosines located within a central region displaying four YXXP motifs. Because these sites are potential docking motifs for Ras-GAP, we tested whether SHP2 dephosphorylates them to facilitate Ras activation. We observed that a Gab1 construct preventing SHP2 recruitment promoted membrane relocation of RasGAP. Moreover, a RasGAP-inactive mutant restored the activation of Ras in cells transfected with SHP2-inactivating Gab1 mutant or in SHP2-deficient fibroblasts, supporting the hypothesis that RasGAP is a downstream target of SHP2. To determine whether Gab1 is a RasGAP-binding partner, a Gab1 mutant deleted of four YXXP motifs was produced. The deletion suppressed RasGAP redistribution and restored the defective Ras activation caused by SHP2-inactivating mutations. Moreover, Gab1 was found to interact with RasGAP SH2 domains, only under conditions where SHP2 is not activated. To identify Ras-GAP-binding sites, Tyr to Phe mutants of Gab1 YXXP motifs were produced. Gab1 constructs mutated on Tyr(317) were severely affected in RasGAP binding and were the most active in compensating for Ras-defective activation and blocking RasGAP redistribution induced by SHP2 inactivation. We have thus localized on Gab1 a Ras-negative regulatory tyrosine phosphorylation site involved in RasGAP binding and showed that an important SHP2 function is to down-regulate its phosphorylation to disengage RasGAP and sustain Ras activation.
Insights
The SHP2 phosphatase down-regulates Gab1 phosphorylation, releasing Ras-GAP and promoting Ras activation. This study identifies a key Gab1 site mediating Ras-GAP binding, crucial for SHP2
Area of Science:
- Molecular Biology
- Cell Signaling
- Oncology
Background:
- SHP2 (PTPN11) is a tyrosine phosphatase involved in cell signaling pathways.
- SHP2 dephosphorylates Gab1, affecting PI3K and Ras activation.
- The precise role of SHP2 in EGF-induced Ras activation via Gab1 was unclear.
Purpose of the Study:
- To elucidate the mechanism by which the Gab1/SHP2 pathway positively regulates EGF-induced Ras activation.
- To identify the specific Gab1 phosphotyrosine sites targeted by SHP2 that mediate Ras-GAP interaction.
- To confirm Ras-GAP as a downstream effector of SHP2 in this pathway.
Main Methods:
- Substrate trapping experiments to identify SHP2-dephosphorylated Gab1 sites.
- Site-directed mutagenesis of Gab1 YXXP motifs.
- Co-immunoprecipitation to assess Gab1-RasGAP interaction.
- Western blotting to analyze Ras and RasGAP activation and localization.
- Experiments in SHP2-deficient fibroblasts.
Main Results:
- SHP2 dephosphorylates Gab1 at YXXP motifs in its central region, facilitating Ras activation.
- Gab1 YXXP motifs serve as docking sites for Ras-GAP.
- SHP2 inactivation leads to increased Gab1-RasGAP binding and impaired Ras activation.
- Mutation of Gab1 Tyr(317) disrupts RasGAP binding and rescues Ras activation upon SHP2 inactivation.
- Gab1 interacts with RasGAP SH2 domains when SHP2 is inactive.
Conclusions:
- SHP2 dephosphorylates Gab1 at Tyr(317) to disrupt RasGAP binding, thereby promoting Ras activation.
- Gab1 acts as a scaffold, with SHP2 regulating its interaction with the negative Ras regulator RasGAP.
- This mechanism highlights a critical role for SHP2 in sustaining Ras signaling, relevant to cancer.
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